ABSTRACT Olive oil polyphenols are a valuable help for human health and producing high‐quality extra virgin olive oil rich in these polyphenols is a key objective for many farmers. In this work, we evaluated the impact of addition of salts to the milling process to increase the polyphenolic content of olive oil. The procedure proved successful, with efficacy dependent on the specific salt used and its concentration. The use of salts, in both laboratory and industrial settings, has increased not only the polyphenol content within the oil but also the yield and the qualitative–quantitative, sensory and nutritional characteristics of olive oil by impacting the amount of other minor constituents of olive oil, such as volatile compounds, chlorophyll, and carotenoids. Using the same approach, and by utilizing wastewater as a source of bioactives, we also successfully enriched other seed oils with olive oil polyphenols minimizing the waste of these substances and valorizing them. This enabled us to obtain a new class of seed oils enriched in antioxidant and anti‐inflammatory compounds, potentially representing a new frontier in nutraceuticals.
Although most upper respiratory tract infections (URTIs) have a viral etiology, antibiotics are widely prescribed, thus contributing substantially to antimicrobial resistance. This study investigated the potential beneficial effects of a novel strain, Limosilactobacillus reuteri LMG P-27481, against major URT pathobionts (Staphylococcus aureus, Streptococcus pyogenes, Streptococcus pneumoniae, Moraxella catarrhalis, and Haemophilus influenzae) with the aim of reducing or delaying antibiotic use. Antibacterial and immunomodulatory activities were evaluated using L. reuteri alone or combined with resveratrol, a natural compound with antiviral and anti-inflammatory properties. Both agents inhibited pathogen growth, while their combination showed additive antibacterial activity, particularly against Gram-negative bacteria. Antioxidant assays demonstrated significant antioxidant capacity for both agents, with enhanced effects in combination in NBT and ABTS assays but antagonistic in ORAC. Immune mediators (IL-6, IL-8, IL-1β, TNF-α, IL-25, IL-33, CCL17, CCL22) were assessed in epidermal, epithelial, and macrophage cell lines, together with epidermal integrity markers (Filaggrin, Loricrin, Involucrin) in a 3D reconstructed human skin model (EpiDermFTTM). L. reuteri, resveratrol, and their combination exerted cell-specific effects in the different models, modulating cytokine expression and production, and barrier integrity. Our findings support the potential efficacy of oral L. reuteri LMG P-27481 plus resveratrol in URTIs.
Alzheimer’s disease (AD) is a progressive neurodegenerative disorder characterized by beta-amyloid (Aβ) deposition, hyperphosphorylation of tau protein (pTau), mitochondrial impairment and neuroinflammation. Several risk factors, such as aging, genetics, cardiovascular diseases (CVD) and lifestyle, concur to the onset of the disease. Among modifiable risk factors, micronutrient intake has gained attention for its potential role in preventing or slowing down disease progression. In this narrative review, we summarize current evidence linking vitamin deficiencies to the onset and progression of AD. We analyze evidence for fat-soluble (A, D, E, K) and water-soluble vitamins (C and B-complex, both canonical B1–B12 and non-canonical forms such as B13, B15, and B17). We then analyze individual and combinational vitamin supplementation in AD patients as the primary focus, with additional data derived from animal and cellular studies when human data are limited. As final result, B6, B9, and B12 vitamins have demonstrated promising effects in clinical trials. Interestingly, some beneficial effects have also been observed in the prodromal stage of AD when these vitamins were combined with antioxidant compounds such as vitamin C and vitamin E. Given the multifactorial nature of AD, targeting isolated vitamin deficiencies may not be sufficient. Future research should focus on long-term clinical trials (at least 2 years), particularly exploring combinations of vitamins and antioxidants, to achieve meaningful therapeutic effects. This review is intended as a point of support for future clinical trials in the treatment of AD from a nutritional point of view.
Understanding the multifaceted nature of neurodegenerative disease (NDDs) remains a significant challenge due to the complex intracellular /intercellular phenomena. This review explores the latest findings about the biochemical stress markers within the complex landscape of NDDs, with a specific focus on novel 3D cell cultures.Recent research highlights the importance of structural complexity and cellular crosstalk which lead to responses resembling those observed in the brain. However, issues such as vascularization and shear stress (which affect experimental reproducibility) remain.Here we emphasize the role of biochemical stressors in cellular interactions and communication relevant to NDDs, highlighting the emerging opportunities coming from exosomes/extracellular vesicles and noncoding RNAs as biomarkers, alongside the usefulness of brain organoids in terms of translational relevance.By bridging the gap between molecular mechanisms and organ dysfunction, 3D models emerge as essential tools for the discovery of novel theragnostic biomarkers and for the development of targeted therapeutic strategies.
A healthy lifestyle, characterized by moderate physical activity, appropriate caloric intake, and a diet rich in fruits and vegetables, contributes to maintaining overall health and preventing several degenerative diseases. Within this context, the health of the muscular system also plays a pivotal role. Increasing evidence highlights the importance of a balanced diet, in combination with regular physical exercise, in preserving muscle function and integrity. Polyphenols, present in fruits, vegetables, and plant-derived foods, have emerged as key allies in counteracting oxidative stress and inflammation, processes that affect muscle cell health. These compounds are involved in the regulation of muscle cell development and differentiation, as well as in the regeneration processes following injury or excessive physical exertion. Through their ability to modulate reactive oxygen species levels, inflammation, and specific cellular pathways, polyphenols are capable of influencing muscle development and homeostasis. This review provides a comprehensive overview of current knowledge regarding the impact of polyphenols on skeletal muscle growth, development, and maintenance, with a focus on their mechanisms of action and therapeutic potential. Recent and innovative extraction and administration strategies, aimed at overcoming some limitations that normally characterize experimentation with bioactive molecules such as polyphenols, are considered and discussed in a prospective view.
Oleacein (Olea) and Oleocanthal (Oleo) are two phenolic compounds found in olive oil. Cell and animal studies have shown these two compounds can modulate inflammation, cancer, and neurodegenerative diseases. Unfortunately, the study of the pharmacokinetics of these two compounds appears difficult due to their high reactivity with primary amines. Indeed, the presence of primary amines in culture media and biological fluids raises the question as to whether the observed biological effects are attributable to the parent compounds or to their amine derivatives. In the present work, we investigated the adduct formation between Olea or Oleo and tris(hydroxymethyl)aminomethane (Tris), a well-known primary amine used primarily as a buffer system, showing that the reaction kinetics were extremely rapid. In addition, we assessed whether the newly formed Tris adducts, i.e., Olea-Tris and Oleo-Tris, retained their antioxidant capacity by means of the ABTS and DPPH radical scavenging assays, showing that their activity was partially maintained. Finally, we evaluated the anti-inflammatory activity of these adducts on murine BV-2 microglial cells stimulated with lipopolysaccharide (LPS) and kept in an amine-free culture medium, showing how the biological response varied as the compound was degraded. Taken together, these data demonstrate that the biological effects reported in the literature are mainly due to the amino-derivatives of Olea and Oleo rather than the polyphenols derived from their breakdown (tyrosol and hydroxytyrosol).
Topical application of the glucocorticoid betamethasone (BM) is a common treatment for inflammatory-related skin diseases, such as psoriasis. However, enhancing its bioavailability remains challenging due to poor skin permeability. Herein, we developed and evaluated hyaluronan-cholesterol (HACH) based nanohydrogel systems (NHs) and NHs-Carbopol formulation for dermal delivery of BM. Various parameters were investigated including particle size, surface charge, encapsulation efficiency, in vitro drug release kinetics and stability. The HACHbased NHs demonstrated high encapsulation efficiency, with apparent solubility improved up to 9-fold, small size (similar to 190 nm) and good stability at 4 degrees C and during long-term storage. Besides, the NHs-Carbopol formulation exhibited excellent rheological properties and an occlusive effect suitable for cutaneous application. Both in-vitro (using Strat-M (R) membrane) and ex-vivo (using pig ear skin) permeation studies revealed that these formulations significantly improved skin permeation and drug retention in the deeper layers of the epidermis and dermis, making it advantageous for the topical delivery of BM in psoriasis treatment. Moreover, the NHs system demonstrated potential anti-psoriatic activity by downregulating the proinflammatory cytokines in vitro in human keratinocytes (HaCaT cell line) and in an ex vivo 3D skin tissue model (EpiDerm-FTTM).
Even though the amino-organocatalysis has been known for decades, the use of chiral C3-symmetric multiamino catalysts in asymmetric synthesis is not widespread. Herein, the previously employed approach for the chiral 1,2-diamino-cyclohexane to the enantiopure 1,2-diphenylethylendiamine is extended. The independent activity of each catalytic subunit is also confirmed for this enantiopure motif by offline high-resolution electrospray mass spectrometry (ESI-MS) experiments. The advantages and limitations of this novel approach in the asymmetric Michael addition of alpha,beta-unsaturated ketones to 4-hydroxycoumarin and 4-hydroxyquinolin-2-one, achieving up to 95% yield and moderate-to-good stereocontrol (enantiomeric ratio up to 80:20) are evaluated. In the pool of synthetized molecules, there are two novel compounds, and one is prepared for the first time using organocatalysis. In addition, some of these molecules show an intrinsic scavenging ability on ABTS center dot+ radical.
Oleocanthal and oleacein are the two major secoiridoids exclusively present in extra virgin olive oil (EVOO). Both compounds exert important pharmacological activities, including anti-inflammatory, anti-tumoral, neuro- and cardiovascular protective effects. Due to their enormous potential as possible drugs the extraction of these two bioactive natural products from EVOO has been extensively investigated in the last years and is generally supported by the use of organic chemistry. It is quite difficult to produce large quantities of these two compounds, either by organic solvent extraction and purification or by chemical synthesis, and furthermore organic processes such as cleaning, defatting, and extraction of EVOO pose a threat to the environment and are potentially harmful to workers. In this work we set up a novel aqueous extraction and isolation method from EVOO by transforming oleocanthal and oleacein into two water-soluble sulfonated products. The two derived compounds, here named thiocanthal and thiocanthol, were isolated by a two-step organic free chromatographic strategy, chemically characterized, and evaluated for their inhibitory activity on cyclooxygenase (COX). The results demonstrate that thiocanthal and thiocanthol possess anti-inflammatory effect, which is comparable to their precursors and higher than the well-known non-steroidal anti-inflammatory drug ibuprofen. Computational docking studies were performed to obtain and analyse putative models of the interaction of thiocanthal and thiocanthol with COX-1 and COX-2 binding sites. Predicted binding energy values suggested that both compounds might preferentially bind COX-2, which may have a significant pharmacological impact. Therefore, thiocanthal and thiocanthol, obtained by this novel green process, are extremely interesting both as new bioactive compounds per se and as lead compounds for the development of novel non-steroidal anti-inflammatory drugs (NSAIDs).
Over the years, health challenges have become increasingly complex and global and, at the beginning of the 21st century, chronic diseases, including cardiovascular, neurological, and chronic respiratory diseases, as well as cancer and diabetes, have been identified by World Health Organization as one of the biggest threats to human health. Recently, antimicrobial resistance has also emerged as a growing problem of public health for the management of infectious diseases. In this scenario, the exploration of natural products as supplementation or alternative therapeutic options is acquiring great importance, and, among them, the olive tree, Olea europaea L, specifically leaves, fruits, and oil, has been increasingly investigated for its health promoting properties. Traditionally, these properties have been largely attributed to the high concentration of monounsaturated fatty acids, although, in recent years, beneficial effects have also been associated to other components, particularly polyphenols. Among them, the most interesting group is represented by Olea europaea L secoiridoids, comprising oleuropein, oleocanthal, oleacein, and ligstroside, which display anti-inflammatory, antioxidant, cardioprotective, neuroprotective and anticancer activities. This review provides an overview of the multiple health beneficial effects, the molecular mechanisms, and the potential applications of secoiridoids from Olea europaea L.
Antibiotic resistance poses a serious threat to the current healthcare system, negatively impacting the effectiveness of many antimicrobial treatments. The situation is exacerbated by the widespread overuse and abuse of available antibiotics, accelerating the evolution of resistance. Thus, there is an urgent need for novel approaches to therapy to overcome established resistance mechanisms. Plants produce molecules capable of inhibiting bacterial growth in various ways, offering promising paths for the development of alternative antibiotic medicine. This review emphasizes the necessity of research efforts on plant-derived chemicals in the hopes of finding and creating novel drugs that can successfully target resistant bacterial populations. Investigating these natural chemicals allows us to improve our knowledge of novel antimicrobial pathways and also expands our antibacterial repertoire with novel molecules. Simultaneously, it is still necessary to utilize present antibiotics sparingly; prudent prescribing practices must be encouraged to extend the effectiveness of current medications. The combination of innovative drug research and responsible drug usage offers an integrated strategy for managing the antibiotic resistance challenge.
RNA is a fundamental nucleic acid for life and it plays important roles in the regulation of gene transcription, post-transcriptional regulation, and epigenetic regulation. Recently, the focus on this nucleic acid has significantly increased due to the development of mRNA vaccines and RNA-based gene therapy protocols. Unfortunately, RNA based products show constrains mainly owing to instability and easy degradability of the RNA molecules. Indeed, unlike the DNA molecule which has a great intrinsic stability, RNA is more prone to degradation and this process is accelerated under thermal treatment. Here we describe a method that involves the use of Natural Deep Eutectic Solvents (NaDES) capable of slowing down RNA degradation process. Our results show that this technology seems suitable for improving the stability of specific RNA molecules particularly susceptible to thermal-induced degradation. Therefore, this technique represents a valuable tool to stabilize RNA molecules used in gene therapy and mRNA vaccines.
The novel amphiphilic polyacrylate grafted with cholesterol moieties, PAAbCH, previously synthesized, was deeply characterized and investigated in the lab and on a pre-industrial scale. Solid-state NMR analysis confirmed the polymer structure, and several water-based pharmaceutical and cosmetic products were developed. In particular, stable oil/water emulsions with vegetable oils, squalene, and ceramides were prepared, as well as hydrophilic medicated films loaded with diclofenac, providing a prolonged drug release. PAAbCH also formed polyelectrolyte hydrogel complexes with chitosan, both at the macro- and nano-scale. The results demonstrate that this polymer has promising potential as an innovative excipient, acting as a solubility enhancer, viscosity enhancer, and emulsifying agent with an easy scale-up transfer process.
trans-Resveratrol is a natural bioactive compound with well-recognized health promoting effects. When exposed to UV light, this compound can undergo a photochemically induced trans/cis isomerization and a 6π electrochemical cyclization with the subsequent formation of 2,4,6-trihydroxyphenanthrene (THP). THP is a potentially harmful compound which can exert genotoxic effects. In this work we improved the chromatographic separation and determination of the two resveratrol isomers and of THP by using a non-commercial pentafluorophenyl stationary phase. We assessed the effect of natural deep eutectic solvents (NaDES) as possible photo-protective agents by evaluating cis-resveratrol isomer and THP formation under different UV-light exposure conditions with the aim of enhancing resveratrol photostability and inhibiting THP production. Our results demonstrate a marked photoprotective effect exerted by glycerol-containing NaDES, and in particular by proline/glycerol NaDES, which exerts a strong inhibitory effect on the photochemical isomerization of resveratrol and significantly limits the formation of the toxic derivative THP. Considering the presence of resveratrol in various commercial products, these results are of note in view of the potential genotoxic risk associated with its photochemical degradation products and in view of the need for the development of green, eco-sustainable and biocompatible resveratrol photo-stable formulations.
S-nitrosothiols (RSNOs) are a group of sulfur-containing compounds biologically involved in nitric oxide (NO˙) release and signalling pathway. NO˙ plays important physiological and pharmacological activities, particularly in vasodilation and in inducing muscle relaxation. Several RSNO compounds have been detected in biological systems, and many of them have been chemically synthesized in the laboratory. To date, no works describing the synthesis of the S-nitrosopantetheine (SNOPANT) are reported in the literature. Taking into account that pantetheine is a biological thiol with a crucial function in metabolism, its nitrosylation in vivo could play a role in various metabolic signalling pathways. In this paper, the synthesis and the chromatographic determination of SNOPANT is reported for the first time, as well as a brief investigation of its reactivity in aqueous solutions in the presence of factors known to affect its stability.
Leishmania spp. are responsible for up to 1 million new cases each year. The current therapeutic arsenal against Leishmania is largely inadequate, and there is an urgent need for better drugs. Trypanothione reductase (TR) represents a druggable target since it is essential for the parasite and not shared by the human host. Here, we report the optimization of a novel class of potent and selective LiTR inhibitors realized through a concerted effort involving X-ray crystallography, synthesis, structure-activity relationship (SAR) investigation, molecular modeling, and in vitro phenotypic assays. 5-Nitrothiophene-2-carboxamides 3, 6e, and 8 were among the most potent and selective TR inhibitors identified in this study. 6e and 8 displayed leishmanicidal activity in the low micromolar range coupled to SI > 50. Our studies could pave the way for the use of TR inhibitors not only against leishmaniasis but also against other trypanosomatidae due to the structural similarity of TR enzymes.
Alzheimer's disease (AD) is a neurodegenerative disorder whose main pathological hallmark is the accumulation of Amyloid-beta peptide (A beta) in the form of senile plaques. A beta can cause neurodegeneration and disrupt cognitive functions by several mechanisms, including oxidative stress. ERp57 is a protein disulfide isomerase involved in the cellular stress response and known to be present in the cerebrospinal fluid of normal individuals as a complex with A beta peptides, suggesting that it may be a carrier protein which prevents aggregation of A beta. Although several studies show ERp57 involvement in neurodegenerative diseases, no clear mechanism of action has been identified thus far. In this work, we gain insights into the interaction of A beta with ERp57, with a special focus on the contribution of ERp57 to the defense system of the cell. Here, we show that recombinant ERp57 directly interacts with the A beta(25-35) fragment in vitro with high affinity via two in silico-predicted main sites of interaction. Furthermore, we used human neuroblastoma cells to show that short-term A beta(25-35) treatment induces ERp57 decrease in intracellular protein levels, different intracellular localization, and ERp57 secretion in the cultured medium. Finally, we demonstrate that recombinant ERp57 counteracts the toxic effects of A beta(25-35) and restores cellular viability, by preventing A beta(25-35) aggregation. Overall, the present study shows that extracellular ERp57 can exert a protective effect from A beta toxicity and highlights it as a possible therapeutic tool in the treatment of AD.